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Can We Advance Macroscopic Quantum Systems Outside the Framework of Complex Decoherence Theory?

机译:我们能否在复杂去相干理论的框架之外推进宏观量子系统?

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Macroscopic quantum systems (MQS) are macroscopic systems driven by quantum rather than classical mechanics, a long studied area with minimal success till recently. Harnessing the benefits of quantum mechanics on a macroscopic level would revolutionize fields ranging from telecommunication to biology, the latter focused on here for reasons discussed. Contrary to misconceptions, there are no known physical laws that prevent the development of MQS. Instead, they are generally believed universally lost in complex systems from environmental entanglements (decoherence). But we argue success is achievable MQS with decoherence compensation developed, naturally or artificially, from top-down rather current reductionist approaches. This paper advances the MQS field by a complex systems approach to decoherence. First, why complex system decoherence approaches (top-down) are needed is discussed. Specifically, complex adaptive systems (CAS) are not amenable to reductionist models (and their master equations) because of emergent behaviour, approximation failures, not accounting for quantum compensatory mechanisms, ignoring path integrals, and the subentity problem. In addition, since MQS must exist within the context of the classical world, where rapid decoherence and prolonged coherence are both needed. Nature has already demonstrated this for quantum subsystems such as photosynthesis and magnetoreception. Second, we perform a preliminary study that illustrates a top-down approach to potential MQS. In summary, reductionist arguments against MQS are not justifiable. It is more likely they are not easily detectable in large intact classical systems or have been destroyed by reductionist experimental set-ups. This complex systems decoherence approach, using top down investigations, is critical to paradigm shifts in MQS research both in biological and non-biological systems.
机译:宏观量子系统(MQS)是由量子而不是经典力学驱动的宏观系统,这是一个长期研究的领域,直到最近才取得了最小的成功。在宏观层面上利用量子力学的好处将彻底改变从电信到生物学的领域,出于讨论的原因,后者集中在这里。与误解相反,没有已知的物理定律会阻止MQS的发展。取而代之的是,通常认为它们在复杂系统中普遍因环境纠缠(退相干)而丢失。但是我们认为,通过自上而下而不是最新的还原论方法自然或人为开发的去相干补偿,可以实现成功的MQS。本文通过一种复杂的去相干系统方法来推动MQS领域的发展。首先,讨论了为什么需要复杂的系统去相干方法(自上而下)。具体来说,复杂的自适应系统(CAS)不适合归约模型(及其主方程),因为它们会出现新的行为,逼近失败,不考虑量子补偿机制,忽略路径积分和次实体问题。另外,由于MQS必须存在于古典世界的上下文中,因此需要快速去相干性和长时间相干性。自然界已经在量子子系统(例如光合作用和磁接收)中证明了这一点。其次,我们进行了一项初步研究,该研究说明了自上而下的潜在MQS方法。总而言之,反对MQS的简化派观点是没有道理的。它们很可能在完整的大型经典系统中不易检测到,或者已被还原论的实验装置破坏。使用自上而下的研究,这种复杂的系统去相干方法对于生物学和非生物学系统中MQS研究的范式转换至关重要。

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